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Verfasst von:Ajdari, Mohsen [VerfasserIn]   i
 Schmitt, Tanja [VerfasserIn]   i
 Hoffmann, Marvin [VerfasserIn]   i
 Maaß, Friedrich [VerfasserIn]   i
 Reiß, Hilmar [VerfasserIn]   i
 Bunz, Uwe H. F. [VerfasserIn]   i
 Dreuw, Andreas [VerfasserIn]   i
 Tegeder, Petra [VerfasserIn]   i
Titel:Electronic properties of 6,13-diazapentacene adsorbed on Au(111)
Titelzusatz:a quantitative determination of transport, singlet and triplet states, and electronic spectra
Verf.angabe:Mohsen Ajdari, Tanja Schmitt, Marvin Hoffmann, Friedrich Maass, Hilmar Reiss, Uwe H.F. Bunz, Andreas Dreuw, and Petra Tegeder
E-Jahr:2020
Jahr:May 21, 2020
Umfang:10 S.
Fussnoten:Gesehen am 25.08.2020
Titel Quelle:Enthalten in: The journal of physical chemistry <Washington, DC> / C
Ort Quelle:Washington, DC : Soc., 2007
Jahr Quelle:2020
Band/Heft Quelle:124(2020), 24, Seite 13196-13205
ISSN Quelle:1932-7455
Abstract:The electronic structure of organic/metal interfaces and thin films is essential for the performance of organic-molecule-based field effect transistors and solar cells. Here, we investigated the adsorption and electronic properties of the N-heteropolycyclic aromatic compound 6,13-diazapentacene (DAP), a potential electron-transporting semiconductor on Au(111), using temperature-programmed desorption, vibrational and electronic high-resolution electron energy loss spectroscopy, two-photon photoemission spectroscopy, and state-of-the-art quantum chemical methods. In the mono and multilayer regime DAP adsorbs in a planar fashion with the molecular backbone oriented parallel to the gold substrate. The energetic position of transport levels (electron affinities and ionization potentials) and singlet (S) as well as triplet (T) transition energies are quantitatively determined. The lowest affinity level is located at 3.48 eV, whereas the energetic position of the first excitonic state is at 4.00 eV, resulting in an exciton binding energy of 0.52 eV. Compared to pentacene, the optical gap is reduced by 0.1 eV and the a-band gains substantially in intensity, which is explained by a detailed analysis of the electronic structure. The optical gap, i.e., the S-1 excitation energy, is determined to be 2.0 eV, and the T-1 transition energy is 0.9 eV, making an exothermic singlet fission process relevant in organic photovoltaics feasible.
DOI:doi:10.1021/acs.jpcc.0c02672
URL:Bitte beachten Sie: Dies ist ein Bibliographieeintrag. Ein Volltextzugriff für Mitglieder der Universität besteht hier nur, falls für die entsprechende Zeitschrift/den entsprechenden Sammelband ein Abonnement besteht oder es sich um einen OpenAccess-Titel handelt.

Volltext: https://pubs.acs.org/doi/10.1021/acs.jpcc.0c02672
 DOI: https://doi.org/10.1021/acs.jpcc.0c02672
Datenträger:Online-Ressource
Sprache:eng
Sach-SW:charge-transport
 dynamics
 energy-loss spectroscopy
 graphene nanoribbons
 growth
 interfaces
 level alignment
 light
 metal
 tert-butyl-azobenzene
K10plus-PPN:1727746961
Verknüpfungen:→ Zeitschrift

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